1,882 324 52MB
English Pages 470 [471] Year 2018
Sue Pemberton
Cambridge IGGSE®and O Level
Additional Mathematics Coursebook Second edition
il Cambridge UNIVERSITY PRESS
Cambridge UNIVERSITY PRESS
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Cambridge Assessment International Education bears no responsibility for the example answers to questions taken from its past question papers which are contained in this publication. All exam-style questions and sample answers in this title were written by the authors. In examinations, the way marks are awarded may be different. NOTICE TO TEACHERS IN THE UK
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4. ,4
A'/'gj,
Contents Acknowledgements Introduction How to use this book 1 Functions
1.1 Mappings 1.2 Definition of a function
1.3 Composite functions 1.4 Modulus functions
1.5 Graphs of))= |f(x) |where f(x) is linear 1.6 Inverse functions
VI
vii
viii 1
2 3 5 7 10
1.7 The graph of a function and its inverse
12 15
Summary Examination questions
18 19
Simnltaneous equations and qnadratics 2.1 Simultaneous equations (one linear and one non-linear)
23
2.2 2.3 2.4 2.5
Maximum and minimum values of a quadratic function Graphs of y = |f(x)| where f(x) is quadratic Quadratic inequalities Roots of quadratic equations
2.6 Intersection of a line and a curve
Summary Examination questions
25 28 34
37 39 42 44 46
Indices and snrds
49
3.1 Simplifying expressions involving indices 3.2 Solving equations involving indices
50
3.3 Surds
55
3.4 Multiplication, division and simplification of surds 3.5 Rationalising the denominator of a fraction 3.6 Solving equations involving surds
57 60
Summary Examination questions
Factors and polynomials
51
63 67 67
4.5 The remainder theorem
70 71 73 75 78 82
Summary Examination questions
86 87
4.1 Adding, subtracting and multiplying polynomials 4.2 Division of polynomials 4.3 The factor theorem
4.4 Cubic expressions and equations
Equations, inequalities and graphs
5.1 5.2 5.3 5.4 5.5
Solving equations of the type \ax - b\ = \cx - d\ Solving modulus inequalities Sketching graphs of cubic polynomials and their moduli Solving cubic inequalities graphically Solving more complex quadratic equations
Summary Examination questions
Logarithmic and exponential functions 6.1 Logarithms to base 10 6.2 Logarithms to base a 6.3 The laws of logarithms
89
90 94 98 102 103 105 107 111
112 115 118
>*.
M
Cambridge IGCSE and 0 Level Additional Mathematics
6.4 Solving logarithmic equations 6.5 Solving exponential equations 6.6 Change of base of logarithms 6.7 Natural logarithms 6.8 Practical applications of exponential equations 6.9 The graphs of simple logarithmic and exponential functions 6.10 The graphs oiy = ke"'' + a and y=k\n {ax+ b) where n, k, a
6.11
and b are integers
130
The inverse of logarithmic and exponential functions
133
Summary Examination questions
7 Straight-line graphs 7.1 Problems involving length of a line and midpoint 7.2 Parallel and perpendicular lines 7.3 Equations of straight lines 7.4 Areas of rectilinear figures 7.5 Converting from a non-linear equation to linear form
7.6 7.7
8
120 122 124 126 128 129
Converting from linear form to a non-linear equation Finding relationships from data
134 135
138 140 143 145 148 151
155 159
Summary Examination questions
165 165
Circular measure 8.1 Circular measure
170 171
8.2
Length of an arc
174
8.3
Area of a sector
177
Summary Examination questions 9 Trigonometry 9.1 Angles between 0° and 90°
ISO 181 186 187
9.2 9.3
The general definition of an angle Trigonometric ratios of general angles
9.4
Graphs of trigonometric functions
195
9.5
Graphs of y = |f(v)|, where f(x) is a trigonometric function
205
9.6
Trigonometric equations
209
9.7 9.8 9.9
Trigonometric identities Further trigonometric equations Further trigonometric identities
214 216 218
Summai7 Examination questions 10 Permutations and combinations 10.1 Factorial notation 10.2 Arrangements 10.3 Permutations 10.4 Combinations
Summary Examination questions
190 192
220 221 224 225 226 229 234
237 238
11 Series
243
11.1
Pascal's triangle
244
11.2
The binomial theorem
249
11.3 Arithmetic progressions 11.4 Geometric progressions 11.5 Infinite geometric series 11.6 Further arithmetic and geometric series
252 257 262 267
Summary Examination questions
270 271
12.1
The gradient function
274 275
12.2
The chain rule
280
12.3 12.4 12.5 12.6 12.7
The product rule The quotient rule Tangents and normals Small increments and approximations Rates of change
12.8
Second derivatives
282 285 287 291 294 298 300 305 310
12 Differentiation 1
12.9 Stationary points 12.10 Practical maximum and minimum problems Summary Examination questions
315
13 Vectors 13.1 Further vector notation 13.2
317 319 323
Position vectors
13.3 Vector geometry 13.4 Constant velocity problems Summary Examination questions
327 331 335
14 Differentiation 2
336
14.1 Derivatives of exponential functions 14.2 Derivatives of logarithmic functions 14.3 Derivatives of trigonometric functions 14.4 Further applications of differentiation Summary Examination questions
337 341 345 350 356 357
15 Integration
361
15.1
Differentiation reversed
15.2 15.3 15.4 15.5
Indefinite integrals Integration of functions of the form {ax+ b)n Integration of exponential functions Integration of sine and cosine functions
15.6
Integration of functions of the form — and
15.7
Further indefinite integration Definite integration Further definite integration
°
311
X
362 365 367 368 370 372
ax+ b
15.10 Area under a curve
375 378 383 385
15.11 Area of regions bounded by a line and a curve Summary Examination questions
392 397 398
15.8
15.9
16 Kinematics
16.1 Applications of differentiation in kinematics 16.2 Applications of integration in kinematics Summary Examination questions
402 404 412 418 419
Answers
422
Index
454
Cambridge IGCSE and 0 Level Additional Mathematics
Acknowledgements Past examination paper questions throughout are reproduced by permission of Cambridge Assessment International Education.
Thanks to thefollowingfor permission to reproduce images: Cover artwork; Shestakovych/Shutterstock Chapter 1 Fanjianhua/Shutterstock; Chapter 2 zhu difeng/Shutterstock; Chapter 3 LACUNA DESIGN/Getty Images; Chapter 4 Michael Dechev/Shutterstock; Fig. 4.1 Steve Bower/Shutterstock; Fig. 4.2 Laboko/Shutterstock; Fig. 4.3 irin-k/Shutterstock; Chapter 5 zentilia/Shutterstock; Chapter
6 Peshkova/Shutterstock; Chapter 7 ittipon/Shutterstock; Chapter 8 Zhu Qiu/FyeFm/Getty Images; Chapter 9 paul downing/Getty Images; Fig. 9.1 aarrows/Shutterstock; Chapter 10 Gino Santa Maria/ Shutterstock; Fig. 10.1snake3d/Shutterstock; Fig. 10.2 Keith Publicover/Shutterstock; Fig. 10.3 Aleksandr Kurganov/Shutterstock; Fig. 10.4 Africa Studio/Shutterstock; Chapter 11 elfinadesign/ Shutterstock; Chapter 12 AlenKadr/Shutterstock; Chapter 13 muratart/Shutterstock; Chapter 14 Neamov/Shutterstock; Chapter 15 Ahuli Labutin/Shutterstock; Chapter 16 AlexLMX/Getty
Introduction This highly illustrated coursebook covers the Cambridge IGCSl^ and O Level Additional Mathematics syllabuses (0606 and 4037). The course is aimed at students who are currendy studying or have
previously studied Cambridge ICCS^ Mathematics(0580) or Cambridge O Level Mathematics (4024). Where the content in one chapter includes topics that should have already been covered in previous studies, a recap section has been provided so that students can build on their prior knowledge. 'Class discussion' sections have been included to provide students with the opportunity to discuss and learn new mathematical concepts with their classmates, with their class teacher acting as the facilitator. The aim of these class discussion sections is to improve the student's reasoning and ofal communication skills.
'Challenge' questions have been included at the end of most exercises to challenge and stretch highability students.
Towards the end of each chapter, there is a summary of the key concepts to help students consolidate what they havejust learnt. This is followed by a 'Past paper' questions section, which contains real questions taken from past examination papers.
A Practice Book is also available in the Cambridge IGCSL^ Additional Mathematics series, which offers students further targeted practice. This book closely follows the chapters and topics of the coursebook offering additional exercises to help students to consolidate concepts learnt and to assess their learning after each chapter. A Teacher's Resource, to offer support and advice, is also available.
Cambridge IGCSE and 0 Level Additional Mathematics
How to use this book Chapter- each chapter begins with a set of learning objectives to explain what you will learn in this chapter.
Chapter 2 Simultaneous equations and quadratics This section will show you how to:
■ solve simultaneous equations in two unknowns by elimination or substitution ■ find the maximum and minimum values of a quadratic function
■ sketch graphs of quadratic functions and find their range for a given domain
■ sketch graphs of the function y | = f{:c)t where ffx) is quadratic and solve associated equations ■ determine the numberof roots of a quadratic equation and the related conditions for a line to intersect, be a tangent or not intersect a given curve ■ solve quadratic equations for real roots and find the solution set for quadratic inequalities^
Recap - check that you are familiar with the introductory skills required for the chapter.
You should already know how to solve linear inequalities. Two examples are shown below. Solve 2(x - 5) < 9 2* - 10 < 9 2x < 19
expand brackets
Solve 5 - 3x ^ 17
add 10 to both sides
-3x
divide both sides by 2
12
subtract 5 fiom both sides
divide both sides by -3
X « -4
X < 9.5
Class Discussion - additional activities to be done in the classroom for enrichment. CLASS DISCUSSION
Solve each of these three pairs ofsimultaneous equations. 8x +
=7
Sx+by = -9
Sx + y = 10 2)1 = 15 -6x
2*+ 5 = .3)1 10 -6)= -4x
Discuss your answers with your classmates. Discuss what the graphs would be like for each pair of equations.
Worked Example - detailed step-by-step approaches to help students solve problems.
Find the value of; 11!
® 5! Answers
g 8! 8x7x6x/x^x^x^)0 si ^x/x/x/yl =8x7x6 = 336
b ill = HxlOx9xXx/x^x/xy^>0x^yl
813!
/x /x^x.^x/x/xix/ X 3 X 2 X 1
_ 990 6 = 165
Note - quick suggestions to remind you about key facts and highlight important points.
o logic Note:30 can also be written as Ig 30 or log30. Challenge-challenge yourself with tougher questions that stretch your skills CHALLENGEQ
6 This design is made from 1 blue circle, 4 orange circles and 16 green circles. The circles touch each other. Given that the radius of each
green circle is 1 unit,find the exact radius of
a the orange circles, b the blue circle.
Summary- at the end of each chapter to review what you have learnt. Summary One radian (b)is the size of the angle subtended at the centre of a circle, radius r, by an arc of length r.
When 9is measured in radians:
■ the length of arc AB = rO m
the area of sector AOB = -AO. 2
Cambridge IGCSE and 0 Level Additional Mathematics
Examination questions - exam-style questions for you to test your knowledge and understanding at the end of each chapter.
Examination questions Worked example The function f is such that f(x) = 4x^ + ax + b, where a and b are constants. It is given that 2* - 1 is a factor of f(x) and that when f(*) is divided by x + 2 the remainder is 20. Find the remainder when f(x) is divided by x - 1. [6] Cat?tbridge IGCSE Addiiumal Mathematics 0606 Paper 11 Q2 Nov 2011 Answer
f(x) = 4x'- 8x^ + ax + b
If 2x - 1 is a factor, then f j=
a + 26 = 3
•d)
Remainder = 20 when divided by x + 2, means that f(-2)= 20.
4(-2)' - 8(-2f + a(-2)+ 6 = 20 -32- 32- 2a + A = 20
-2a + b = 84
(2)
From (1) a = 3- 26.
Substituting in (2), gives; -2(3- 26)+6 = 84 -6 + 46 + 6 = 84 56 = 90 6 = 18
So a = —33,6 = 18.
Remainder when f(x) = 4x'- 8x^ - 33x + 18 is divided by (x - I) is f(I).
Remainder = 4(1)' - 8(1)'^ - 33(1)+ 18 = 4-8-33+ 18 = -19
Activity-for you to apply your theoretical knowledge to a practical task. ACTIVITY
Use graphing software to confirm that:
• y = cos X + 1 is a translation of y = cos x by the vector ^ • y = cos X + 2 is a translation of y = cos x by the vector
fo)
• y = cosx -3 is a translation of y = cosx by the vector ^ and
• y = tan x + 1 is a translation of y = tan x by the vector y = tan x - 2 is a translation of y = tan x by the vector
fo1
-9
■
■
'■■■
■■
Chapter 1 Functions This section will show you how to: understand and use the terms: function, domain, range (image set), one-one function, inverse function and composition of functions
use the notation f(*) = 2x^ -f5 , f: x i-> 5x- 3, f~^(x) and f^(x)
understand the relationship between y = f(x) and y = |f(x)| solve graphically or algebraically equations of the type \ax + b\ = c and \ax + b\ = cx + d explain in words why a given function is a function or why it does not have an inverse find the inverse of a one-one function and form composite functions use sketch graphs to show the relationship between a function and its inverse.
I
Cambridge IGCSE and 0 Level Additional Mathematics
1.1 Mappings Input
Output
1
2
2
3
3
4
4
5
is called a mapping diagram.
The rule connecting the input and output values can be written algebraically as: X
X + 1.
This is read as 'x is mapped to x+ T.
x+ 1
The mapping can be represented graphically by plotting values of x + 1 against values of x. The diagram shows that for one input value there isjust one output value. It is called a one-one mapping. The table below shows one-one, many-one and
X
one-many mappings. one-many
many-one
: y/x
o X
For one input value there isjust one output
For two input values there is one output
For one input value there are two output
value.
value.
values.
Exercise 1.1
Determine whether each of these mappings is one-one, many-one or one-many. 1
X 1-^
X -1- I
X€
2 xi-^x^ + 5
xelR
3
X l->
x^
xe
4 X i-> 2*
xe R
5
X
6 x1-^x^ + 1
xeR, x^O
8
xe R, X S: 0
1 —
XG
x>0
X
12 7
xG R, x> 0
XG
X X
X I—> ± X
Chapter 1: Functions
1.2 Definition of a function A function is a rule that maps each x value to just one y value for a defined set of input values. This means that mappings that are either
x -l- 1 where x e IR, is a one-one function.
,
.
^f:x^-»x^-l xeIR
It can be written as
X -I-1 is read as 'the function f is such that x is mapped to x -I- T) f(x) represents the output values for the function f. So when f(x) = x -t-1, f(2) =2-1-1 = 3.
The set of input values for a function is called the domain of the function. The set of output values for a function is called the range (or image set) of the function. WORKED EXAMPLE 1
f(x) =2x-l x€lR,-l^x^3 a
Write down the domain of the function f.
b Sketch the graph of the function f. c Write dowm the range of the function f. Answers
a
The domain is —1 ^ x ^ 3.
b The graph of y = 2x — 1 has gradient 2 and a y-intercept of-1. When X = -1, y = 2(-l)- 1 = -3 When x = 3,y = 2(3)-1=5 f(x) (3,5)
x-2 d X i-> X"
1.4 Modulus functions The modulus of a number is the magnitude of the number without a sign attached.
The modulus of 4 is written 141.
|4|= 4and|-4|= 4 It is important to note that the modulus of any number (positive or negative) is always a positive number. The modulus of a number is also called the absolute value.
Cambridge IGCSE and 0 Level Additional Mathematics
The modulus of x, written as ] x|, is defined as:
^ X
if X > 0
I x| = < 0
if X = 0
L -X
if X < 0
CLASS DISCUSSION
Ali says that these are all rules for absolute values:
l-Jc +^|=|xl +\^\ lx;)/|=|x| X \/\
|x|
I/I
r|^|/=x^
Discuss each of these statements with your classmates and decide if they are: Always true
Sometimes true
Never true
You must justify your decisions.
The statement 1 x| = fe,where k ^ 0, means that x =
or x = -k.
This property is used to solve equations that involve modulus functions. So, if you are solving equations of the form \ ax + b\
k, you solve
the equations ax + b = k
and
ax + b = -k
If you are solving harder equations of the form \ax + b\ = cx + d, you solve the equations ax + b = cx + d
and
ax + b =-{cx + d).
When solving these more complicated equations you must always check your answers to make sure that they satisfy the original equation.
Chapter 1: Functions
WORKED EXAMPLE 5
Solve.
a |2x + l| = 5
b |4x-3|
c
d IX - 3| = 2x
-10
Answers
14x - 3l = X
a |2x + l| = 5 2x +1 = -5
4x - 3 = X
2x = 4
2x = -6
3x = 3
X=2
X = —3
X =1
2x + 1 = 5
or
CHECK:!2x2+ l| = 5 / and !2x-3 + 1| = .5/
4x - 3 = -X 5x = 3 X = 0.6
CHECK: I 4 X 0,6 - 3| = 0.6/ and |4 X 1-3| = 1/
Solution is: x = -3 or 2.
Solution is: x = 0.6 or 1.
c |x^-10| = 6 x^ - 10 = 6
or
I X - 3| = 2x
or
X
.2
x^ = 16 X = ±4
X - 3 = 2x
10 = -6
or
X — 3 = —2x
X = -3
x2=4
3x = 3
X=1
X = ±2
CHECK: I(-4f - 10| = 6/,
CHECK: 1-3- 3| 2 X -3 and 11 - 3! = 2 X 1 /
|(-2f-10|= 6/,|(2)^-10|=6/
X
Solution is: X = 1.
and|(4f-10|= 6/ Solution is: x = -4, -2, 2 or 4.
Exercise 1.4 1
Solve
a |3x:-2| = 10 X -1
^-5
7-2x 1
X 4-1
2x 1
2
=4
=4
i 12x - 5| = X
5
Solve
2x - 5
3x 4- 2 =8
a
X 4- 3
d |3x-5|= x4-2 3
2x 4- 7
=1
4 2
c 16 - 5x I = 2
=6
d
g
b 12x4-9] = 5
=2
14-
X 4- 1
e x4-|x-5|= 8
X 4-12 =3 X 4- 4
f 9 —11 — x| = 2x
Solve
a IX - l| = 3 d I x^ — 5x| = X g I 2x^ 4-1| = 3x
b |x^ 4-l| = 10 c 4 - X I = 2- X e |x^-4|= x4-2 f x^ — 3j = X 4- 3 h |2x^-3x|= 4-x i ^ 7x 4- 6| = 6 X'
4 Solve each of the following pairs of simultaneous equations a3i = x4-4
j' =|x^-16|
b3i = x
3! =|3x-2x^|
C3i=3x
)) =|2x^-5|
Cambridge IGCSE and 0 Level Additional Mathematics
1.5 Graphs of y =|f(x)| where f(x)is linear Consider drawing the graph of 3) =|x|.
V
First draw the graph of 31 = %.
II
0
X
/ You then reflect in the x-axis the part of the line that is below the x-axis. X
I
WORKED EXAMPLE 6
Sketch the graph of 3; = graph meets the axes.
-x-1 2
,showing the coordinates of the points where the
Answers y
First sketch the graph of V ~
~
The line has gradient — and a
31-intercept of -1.
^ 0
■ ■ ■v-'iSv' '
You then reflect in the x-axis the part of the line that is below the x-axis.
X
y
> ,.---'2
X
Chapter 1: Functions
y= 2x + 1
In Worked example 5 you saw that there were two
answers, x = —3 or x = 2, to the equation|2x + 1| — 5. These can also be found graphically by finding the x-coordinates of the points of intersection of the graphs of y =|2x + 11 and y = 5 as shown.
y=5
In the same worked example you also saw that there was only one answer, x = 1, to the equation|x - 31 = 2x. ^U-3l
This can also be found graphically by finding the x-coordinates of the points of intersection of the
graphs of y =|x — 3| and y = 2x as shown.
Exercise 1.5
1 Sketch the graphs of each of the following functions showing the coordinates of the points where the graph meets the axes.
a y =|x + l| • y = — X +3 2
. b y=,l2x-3|
c y = l5-xl
e y = 110 - 2x I
-
f y
6
1
X
3
2 a Complete the table of values for y = ] x - 21 + 3; X
-2
y
-I
0
6
' 1
2
3
4
4
b Draw the graph of y =|x — 2|+ 3 for -2 ^ x ^ 4.
Draw the graphs of each of the following functions,
a y =|x|+ l d y = lx-3|+ l
. b y =|x|-3
c y = 2-lx|
e y =|2x + 6|-3
Given that each of these functions is defined for the domain -3 « find the range of
a f:xi-»5-2x
b g:xh-»l5-2xl
c h;xt-^5-l2x|,
4,
Cambridge IGCSE and 0 Level Additional Mathematics
5 f: X i-> 3- 2x
for
g:xi->(3-2x|
for
h : X i-» 3-1 2x I
for
-1
x
4
-1 =€ x
4
Find the range of each function.
6 a Sketch the graph of 3; =|2x + 41 for -6 < x < 2, showing the coordinates of the points where the graph meets the axes,
b On the same diagram, sketch the graph of 31 = x + 5. c Solve the equation|2x + 41 = x + 5.
7 A function f is defined by f(x) =|2x - 6|- 3, for -1 ^ x ^ 8. a Sketch the graph of31 = f(x). b State the range off. c Solve the equation f(x) = 2.
8 a Sketch the graph of 3; = 13x - 41 for - 2 < x < 5, showing the coordinates of the points where the graph meets the axes,
b On the same diagram, sketch the graph of 3; = 2x. C Solve the equation 2x = 13x - 41. I CHALLENGEQ
9 a Sketch the graph of f(x)=|x + 2 +1 x - 21.
b Use your graph to solve the equation|x+2|+|x-2|= 6.
1.6 Inverse functions The inverse of a function f(x) is the function that undoes what f(x) has done.
The inverse of the function f(x) is written as f~Hx).
The domain of f~^(x) is the range of f(x). The range off~^(x) is the domain off(x). It is important to remember that not every function f-Hx)
has an inverse.
An inverse function f-^(x) can exist if, and only if, the function f(x) is a one-one mapping.
You should already know how to find the inverse function ofsome simple one-one mappings.
The steps to find the inverse of the function f(x) = 5x - 2 are:
Step 1: Write the function as 31 =
>■ y = 5x - 2
Step 2: Interchange the x and y variables. -
■*- X = 5y - 2
Step 3: Rearrange to make y the subject.
►y=
f-^x)
X + 2
X + 2
Chapter !: Functions
CLASS DISCUSSION
Discuss the function f(x)=
for xe R.
Does the function f have an inverse?
Explain your answer. How could you change the domain off so that f(x) = does have an inverse?
WORKED EXAMPLE 7
f(x)= Vx + 1 — 5 for X
-1
a Find an expression for f~'(x). b Solve the equation f~'(x) = f(35). Answers
a f(x) = -v/x + 1 — 5 for X ^-1
Step 1: Write the function as 31 = Step 2: Interchange the x and y variables.
y = yjx + l - 5
X = yjy + l - 5 X + 5 = ^Jy +I
Step 3; Rearrange to make y the subject.
(x + 5)2 = 3+ 1 3 =(x + 5)2 - 1
f-'(x)=(x +5)2-1 b f(35)= >/35Tr-5 = l (x+ 5)2-1 = 1
(x + 5)2 = 2 X + 5 = ±^J2 X = —5 + V2
»: = -5 + \/2 or X = —5 — y/2 The range off is f(x) ^ -5 so the domain off~' is x & -5.
Hence the only solution of f~^(x) = f(35) is x = -5 + >/2.
Exercise 1.6
1 f(x)=(x + 5)^ - 7 for X 5= -5. Find an expression for f~'(x). 0
2 f(x)= y. ^2,
^ ^ 0- Find an expression for f~^(x).
3 f(x)=(2x - 3) +1 for x ^ 1—.Find an expression for f~^(x). 4 f(x) = 8- Vv - 3 for x ^ 3. Find an expression for f~^(x).
Cambridge IGCSE and 0 Level Additional Mathematics
5 f:xh->5x-3forx>0
for x # 2 2- X
Express
and
in terms of x.
6 f : X -> (x + 2)^ - 5 for X > -2
a Find an expression for f~^(x).
b Solve the equation f ^(x) = 3.
7 f(x) = (x - 4)^ + 5 for x > 4
a Find an expression for f~^(x). ,,
8 g(x) =
2x + 3
b Solve the equation f ^(x) = f(0)
-
for X > 1
X —1
a Find an expression for g~^(x). b Solve the equation g (x) = 5.
9 f(x)= ^+ 2 for xeIR
g(x)= x^ - 2x for xeR
a Findf"H^«)-
^ Solve fg(x) = f"H»:)-
10 f(x) = x^ + 2 for xeIR
g(x) = 2x + 3 for xe K
Solve the equation gf(x) = g~^(l7). 2x + 8
g : X i-> -—- for X > -5
for X ^ 2
11 f : X i->
X -2
Solve the equation f(x) = g~^(x).
12 f(x) = 3x - 24 for x 5= 0. Write down the range off ^ 13f:xi-^x + 6 forx>0 Express x 14 f : X
g;xi-^>/x forx>0
x^ -6 in terms off and g.
3- 2x for 0 < X ^ 5
g:xi->l3-2xl for0^x=s5 h:xi-»3-|2x| for0^x=s5 State which of the functions f, g and h has an inverse.
15 f(x) = x^ + 2 for X ^ 0
g(x) = 5x - 4 for x ^ 0
a Write down the domain off~^ b Write down the range of g ^ 16 The functions f and g are defined,for x e IR, by f:X
Sx - k, where A is a positive constant 5x-14
where x
g;X
-1.
X +1
a Find expressions for f~^ and g"^ b Find the value of k for which f"'(5) = 6.
c Simplify g"^g('c)-
Chapter 1: Functions
17 f : X h-»
for xgR
g:xi-^x-8 for x g IR
Express each of the following as a composite function, using only f, g,f~^
and/or g"^; a X
^
(x - 8)3
b
xi-^x^+8
c
xh-»x3—8
I
d X i-> (x + 8)3
1.7 The graph of a function and its inverse In Worked example 1 you considered the function f(x) = 2x - 1 x g R, —1 ^ X ^ 3.
The domain off was -1 ^ x < 3 and the range off was -3 ^ f(x) ^ 5. X+1 The inverse function is f
-
The domain off Ms -3 ^ x ^ 5 and the range off-1Ms -1
f'(x) ^ 3.
Drawing f and f ^ on the same graph gives; (3,5);
b=;
(-1,-3)
Q The graphs offand f"^ are reflections of each other in the line y= X. Note;
This is true for all one-one functions and their inverse functions.
This is because; ff"^(x) = x = f-^f(x). Some functions are called self-inverse functions because f and its inverse f ^ are the same.
If f(x) = — for X 5!: 0, then f~'(^) = ~ for x # 0. X
X
So f(x) = — for X * 0 is an example of a self-inverse function. X
When a function f is self-inverse, the graph off will be symmetrical about the line y = X.
Cambridge IGCSE and 0 Level Additional Mathematics
WORKED EXAMPLE 8
f(x) = (x - 2)^, 2
X ^ 5.
On the same axes, sketch the graphs of 31 = f(x) and 3 = f '(x), showing clearly the points where the curves meet the coordinate axes.
Answers -
This part of the expression is a square so it will always y^Ux-tf
be > 0. The smallest value it can be is 0. This occurs when X = 2. i
When X = 5,jy = 9. 'T 10-
1
) y
"
10-
1 : 1 i i 1
} R
1-8-
/
/
/ / 9
Reflect fin y =
1h 1-6 ■
2
f-i
1 h'l
'-ii j /
—
r
'a
1/ !,- !
-
/ 1
\ /hi -ii
1
... L .
i 4
y 0
1 j\ I
—
\
5 1 8
1 /
'qJ
]
|o
! 1 2 ! i !
1
5
10^
CLASS DISCUSSION
Sundeep says that the diagram shows the graph of
y CL
y^^f (X)
the function f(x:) = x" for x> 0, together with its inverse
f
function y=f~^(x). Is Sundeep correct? Explain your answer. v=
^
r'(x)
...
i
0
4 .
5
^
Chapter 1: Functions
Exercise 1.7
1 On a copy of the grid, draw the graph ft ■ o
of the inverse of the function f. 4
f
0 A
fi
(>
01
f1 X
(
Q
4
-fi-
y
2 On a copy of the grid, draw the graph
(j
of the inverse of the function g.
4
g O
h
C
)
o
>
f1 ^
-4
-fi-
f(x) =
+ 3, X ^ 0.
On the same axes, sketch the graphs of y = f(x) and y = f~'(x), showing the coordinates of any points where the curves meet the coordinate axes. g(x)= 2* for X € K
On the same axes, sketch the graphs of y = g(x) and y = g"^(x), showing the coordinates of any points where the curves meet the coordinate axes.
g(x)= x^ — 1 for X ^ 0.
Sketch, on a single diagram, the graphs of y = g(x) and y = g~\x), showing the coordinates of any points where the curves meet the coordinate axes. f(x) = 4x - 2 for -1 ^ X ^ 3.
Sketch, on a single diagram, the graphs of y = f(x) and y = f~Hx), showing the coordinates of any points where the lines meet the coordinate axes.
The function f is defined by f : x i-» 3-(x + 1)^ for x ^ -1. a Explain why f has an inverse,
b Find an expression for f~' in terms of x. C On the same axes, sketch the graphs of y = f(x) and y = f~^(x), showing the coordinates of any points where the curves meet the coordinate axes.
Cambridge IGCSE and 0 Level Additional Mathematics
CHALLENGEQ 8
2% + 7 — for X ^ z X—2 a Find in terms of x. I : X i->
b Explain what this implies about the symmetry of the graph of y = f(x).
Summary
I
Functions
A function is a rule that maps each x-value tojust one y-value for a defined set of input values.
Mappings that are either J
I many-one
are called functions.
The set of input values for a function is called the domain of the function.
The set of output values for a function is called the range (or image set) of the function. Modulus function
The modulus of x, written as| x|, is defined as: X
ifx>0
0
if X = 0
-X
if X < 0
Composite functions
fg(x) means the function g acts on x first, then f acts on the result,
f^(x) means ff(x). Inverse functions
The inverse of a function f(x) is the function that undoes what f(x) has done.
The inverse of the function f(x) is written as f"^(x).
The domain off~^(x) is the range off(x). The range off^x) is the domain of f(x).
An inverse function f~'(x) can exist if, and only if, the function f(x) is a one-one mapping. The graphs off and f~^ are reflections of each other in the line y = x.
Examination questions Worked example The functions f and g are defined by 9V
f(x) =
for X > 0, X +1
g(x) = Vx + 1 for X > -1. a Find fg(8).
[2]
b Find an expression for f (x), giving your answer in the form
ax
where a, b and c are
ix + c
integers to be found.
"
C Find an expression for g~'(x), stating its domain and range.
[3]
[4]
Cambridge IGCSE Additional Mathematics 0606 Paper 21 Q12i,ii,iii fun 2014
Answers
a
g(8) =
=3 2x
fg(8) = f(3)
substitute 3 for x in
c +1
2(3) 3+ 1 = 1.5
b f^C^v) = ff(x) 2x =f
2x substitute
X +1
2x for x in
X +1
X +1
2x X +1 2x +1 X +1
simplify
4x
_
X+1 3x +1
multiply numerator and denominator by x + 1
X +1 4x 3x +1
a = 4, & = 3 and c = 1
Cambridge IGCSE and 0 Level Additional Mathematics
g(x:) = yjx + l for X > -1 Step 1: Write the function as }) =
y = y/x + l
Step 2: Interchange the x and y variables.
X = yjy + I
Step 3: Rearrange to make y the subject.
X" = )! + 1
y = x'^ ■ 1
g
The range of g is g(x) > 0 so the domain of g Ms x > 0. The domain of g is x > -1 so the range of g~' is x > -1. Exercise 1.8
Exam Exercise
1 Solve the equation 14x - 5[ = 21.
[3] Cambridge IGCSE Additional Mathematics 0606 Paper 21 QI Nov 2011
a Sketch the graph of = 13 + 5x|, showing the coordinates of the points where your graph meets the coordinate axes.
[2]
b Solve the equation 13 + 5x|= 2.
[2] Cambridge IGCSE Additional Mathematics 0606 Paper 11 Qli,ii Nov 2012
a Sketch the graph of y = 12x - 51, showing the coordinates of the points where the graph [2]
meets the coordinate axes. y
0
X
b Solve 12x - 51 = 3.
[2] Cambridge IGCSE Additional Mathematics 0606 Paper 11 Qli,iiJun 2012
4 A function f is such that f(x) = 3x^ - 1 for -10 ^ x
8.
a Find the range of f.
[3]
b Write down a suitable domain for ffor which f~'exists.
[1]
Cambridge IGCSE Additional Mathematics 0606 Paper 11 Q12ai,ii Nov 2013
Chapter 1: Functions
5 The functions f and g are defined for real values of x by
f(x)= y]x- \ - 3 for X > 1, g(x)=
x-2 for X >2.
2x — 3
a Findgf(37).
[2]
b Find an expression for f"'(x). C Find an expression for g"'(x).
[2]
[2] Cambridge IGCSE Additional Mathematics 0606 Paper 21 Q4 Noxi 2014
6 A function g is such that g(»;) =
1
for 1
X ^ 3.
2x - 1
a Find the range of g.
[1]
b Findg"'^(x). C Write down the domain of g"^^)d Solve g^(x) = 3.
[2] [1] [3] Cambridge IGCSE Additional Mathematics 0606 Paper II Q9i-iv Nov 2012
7 a The functions f and g are defined, for x e R, by f : X H-> 2x + 3
g:X
x'-^ - 1.
Find fg(4).
[2]
b The functions h and k are defined, for x > 0, by h : X i-> X + 4
k : X h-> yfx. Express each of the following in terms of h and k.
ii
X
Vx + 4
[1]
X
X +8
[1]
X
x^ - 4
[2] Cambridge IGCSE Additional Mathematics 0606 Paper 21 Q5a,bi,ii,iii Nov 2011
8 The function f is defined by f(x) = 2- \lxA-b for -5 ^ x < 0. i
Write down the range of f.
ii
Find f~n^) and state its domain and range.
[2]
[4]
4
The function g is defined by g(x) = — for -5 ^ x < -1.
iii Solve fg(x) = 0.
[3] Camimdge IGCSE Additional Mathematics 0606 Paper 11 Q6Jun 2016
Cambridge IGCSE and 0 Level Additional Mathematics
9 a The function f is such that f(x) = 2x^ - 8x + 5.
i
Show that f(x) = 2{x + a)^ + b, where a and b are to be found.
[2]
ii
Hence, or otherwise, write down a suitable domain for f so that f"^ exists,
[1]
b The functions g and h are defined respectively by g(x) =
i ii
+ 4, X ^ 0, h(x) = 4x - 25, X ^ 0,
Write down the range of g and of h"^ On a copy of the axes below sketch the graphs of y = g(x) and of y = g~^(x), showing
[2]
the coordinates of any points where the curves meet the coordinate axes.
[3]
}'
1
D
O
iii Find the value of xfor which gh(x) = 85.
[4]
Cambridge IGCSE Additional Mathematics 0606 Paper II Q1 lai,ii,bi,ii,iiiJun 2011
10 i On the axes below, sketch the graphs of y = 2- x and y = 13 + 2x|.
[4]
y 9-
6
ii Solve 13 + 2x|= 2 ■
O
6 ^
[3] Cambridge IGCSE Additional Mathematics 0606 Paper 12 Q4 Mar 2016
Chapter 2
Simultaneous equations and quadratics This section will show you how to:
m solve simultaneous equations in two unknowns by elimination or substitution ■ find the maximum and minimum values of a quadratic function
m sketch graphs of quadratic functions and find their range for a given domain ■ sketch graphs of the function y ==|f(jc)| where f(x) is quadratic and solve associated equations ■ determine the number of roots of a quadratic equation and the related conditions for a line to intersect, be a tangent or not intersect a given curve
■ solve quadratic equations for real roots and find the solution set for quadratic inequalities.
Cambridge IGCSE and 0 Level Additional Mathematics
RECAP(simultaneous equations)
You shouki alieady know how lo use a graphical method or an algebraic method to soh'e simultaneous equations where both equations are linear. To solve siniultaneous linear equations algebraically you should know both the elimination method and the substitution method.
Substitution method
Elimination method
Solve
5x + 2y = 25 2x-y = l
-(1)
Solve
-(2)
5*:+ 2y = 25 2*- y = 1
Make y the subject of equation (2).
Multiply (2) by 2. 5x + 2y = 25 4*- 2y = 2
y = 2ac — 1
Substitute for y in equation (1). 5x + 2(2x-l)= 25
Add the equations to eliminate y.
9x - 2 = 25
9x = 27
9x = 27
*= 3
X =3
Substitute for *in equation (2). 6- y = 1 y =5
Substitute for a:in equation (2). 6- y = 1 y=5
Solution is X = 3, y = 5.
Solution is * = 3, y = 5.
CLASS DISCUSSION
Solve each of these three pairs of simultaneous equations. Sx + 3y = 7 3x + 5y =-9
Sx + y = 10
2x + 5 = 3y
2y = 15- 6a;
10-6y = -4a:
Discuss your answers with your classmates. Discuss what the graphs would be like for each pair of equations.
-(1)
"(2)
Chapter 2: Simultaneous equations and quadratics
« RECAP(quadratic equations) You should already know how to use a graphical method or an algebraic method to solve quadratic equations. To solve quadratic equadons algebraically you should know the factorisation metlK)d, the quadratic formula method and the completing the square method.
Factorisation method
Solve
Quadratic formula method
- 4x - 12 = 0.
Solve
Factorise:
- 4x -12 = 0.
Identify a, b and c (5C- 6)(x + 2)= 0
a = \,b = —4 and c = -12. Use the formula:
x-6 = 0 or *: + 2= 0 Solution is
-b±4b^
x = 6 or * = -2.
• 4ac
X =
2a
Substitute for a, b and c.
4 ± V(-4f -4 X1 X(-12)
Completing the square method Solve
2x1
x^ -4x-12 = 0.
Complete the square.
4±
(*:-2f -4-12= 0 (*-2)^ = 16
2 4 ±8 X =
Square root both sides.
2
X-2 = ±4
4+8 X =
x — 2 = 4 or *:-2 = —4
Solution is
X = 6 or X = -2.
4-8 or X =
2
2
Solution is x = 6 or x = -2.
CLASS DISCUSSION
Solve each of these quadratic equations.
-8x+ 15 =0
x^ + 2x+4=0
+ 4x + 4=0
Discuss your answeis with your classmates. Discuss what the graphs would be like for each of the functions y = - 8x+15,y ^ + 4x+4 and y = + 2x + 4.
2.1 Simultaneous equations(one linear and one non-linear)
x+1
In this section you will learn how to solve
simultaneous equations where one equation is linear and the second equation is not linear. The diagram shows the graphs of y = x +1
(-2,-1)
and y = x^ - 5.
The coordinates of the points ofintersection of the two graphs are (-2,-1) and (3, 4).
y = x^ + 5
Cambridge IGCSE and 0 Level Additional Mathematics
We say that x = —2, y = —1 and x = 3, y = 4 are the solutions of the simultaneous equations y = x +1 and y = x^ - 5. X
Oh
t
or
The solutions can also be found algebraically: II
00
y = X +1
(1)
y = x^ - 5
(2)
Substitute for y from (1) into (2): x + l = x^-5
rearrange
- X -6 = 0
factorise
(x + 2)(x-3)= 0 X = -2 or X = 3
Substituting x =-2 into (1) gives y = -2 + 1 = -1. Substituting x = 3 into (1) gives y = 3+ 1 = 4. The solutions are: x = -2, y = -1 and x = 3, y = 4.
WORKED EXAMPLE 1 J Solve the simultaneous equations.
2x + 2y = 7
Answers
2x + 2y = 7
~(l)
— 4y^ = 8
From
, X = 7-^2y
j Substitute for x in expand brackets
49_28y + 4y^ 4/- 8 !
mulliph liolh sides by4
4
1 49- 28y + 4y^ -16y^ = 32
rearrange' faciorise
12y2 + 28y -17 = 0
(63> + 17)(23i-1)= 0 1 v = —2 — or y = — 1
5
Substituting y = -2 — into 1.
Substituting 7 ~ g
gives X = D —.
gives X = 3. 5
The solutions are: x = 6 —
1
'^ ^ 6 ^"^* = ^'7=2'
3
Chapter 2: Simultaneous equations and quadratics
Exercise 2.1
Solve the following simultaneous equations. 1
y=
9
y = X —6
2
3
x^ — xy = 0
3y = 4x - 5
6
7
X + 2y = 7
y = 2x
10
2x + y = 7
y = 2x + 2 8
11
x^ + y^ = 10
X-y = 2
2x2 _ 3^2 _
xy = 6
x2 + 3xy = 10
X+y=1 9
4
x2 + y2 = 25
y = X +6 5
y=X—1
xy = 2 X+y=3
12
y2 = 4x 2x + y = 4 II
X+ y =4
14
13
y = 3x
16
3 + X + xy = 0
xy = 12
18
(x-l)(y + 2)= 15
2x + 5y = 8
X -2y
4y2 - 3x2 _ j
x2 + y2 = 10
2x2 + 3^ = 1 17
15
II
19 Calculate the coordinates of the points where the line y — 1 — 2x cuts the CM 1
curve
= 2.
M(
20 The sum of two numbers x and )) is 11.
The product of the two numbers is 21.25. a Write down two equations in OC x and y. 00 II II
b Solve your equations to find the possible values of x and y. + + 21 The sum of the areasC^lof two squares is 818cm^. M(
The sum of the perimeters is 160cm. Find the lengths of the sides of the squares.
22 The line y = 2-2x cuts the curve
- y^ = 5 at the points A and B.
o
Find the length of the line AB. II
23 Theoeline 2x + 5y = 1 meets the curve x^ + 5xy - 4y^ +10 = 0 at the +
points A and B. Find the coordinates of the midpoint of AB.
24 The line y = x - 10 intersects the curve x^ +
+ 4x + 6y - 40 = 0 at
the points A and B. Find the length of the line AB.
25 The straight line y = 2x - 2 intersects the curve x^ - y = 5 at the points A and B.
Given that A lies below the x-axis and the point P lies on AB such that AP:PB=3: I, find the coordinates of P.
26 The line x - 2y = 2 intersects the curve x + y^ = 10 at two points A and B. Find the equation of the perpendicular bisector of the line Ai5.
Cambridge IGCSE and 0 Level Additional Mathematics
2.2 Naximum and minimum values of a quadratic function The general equation of a quadratic function is f( x) = ax^ + bx + c ,where «, b and c are constants and ai^Q.
The graph of the function y = asc + bx + c is, called a parabola. The orientation of the parabola depends on the ^ rr* • _r 2 value of a, the coefficient of xl
r
r
r
If a > 0, the curve has a minimum point which occurs at the lowest point of the curve.
If « < 0, the curve has a maximum point which , occurs at the highest point of the curve.
The maximum and minimum points can also be called turning points or stationary points.
Every parabola has a line of symmetry that passes through the maximum or minimum point. WORKED EXAMPLE 2
f(x)= x^-3x-4 xe IR Find the axis crossing points for the graph of y - f(x). Sketch the graph of y = f(x) and use the symmetry of the curve to find the coordinates of the minimum point. State the range of the function f(x). Answers
a y = x^-3x-4 When X = 0, y = -4. When y = 0, X? - 3x- 4 =0 (x+ 1)(x- 4)= 0 X = -I or X =4
Axes crossing points are: (0,-4),(-1,0) and (4,0). b The line of symmetry cuts the x-axis midway between -I and 4.
J
X =
1.5
y= x^ -3x-4
So the line of symmetry is x = 1.5
When X = 1.5, y = (1.5)2- 3(1.5)- 4. y =-6.25.
Minimum point = (1.5, -6.25).
-l\ 0 -T
c The range is f(x) ^ -6.25.
k
X
Chapter 2: Simultaneous equations and quadratics
Completing the square
If you expand the expressions (x + d)^ and (x - df you obtain the results: (x + d)^ = x^ + 2 0. The smallest value it can be is 0. This occurs when x = I.
The minimum value of the expression is 2x0 + 3 = 3 and this minimum occurs when x = 1.
So the function y = 2x- - 4x + 5 will have a minimum point at the point (1,3). When X = 0, y = 5.
The graph of y - 2x- - 4x + 5 can now be sketched:
y = 2x^ - 4x + 5
The line of symmetry is x = 1.
The range is y ^ 3.
The general rule is:
For a quadratic function f(x) = ax^ + bx+ c that is written in the form f(x) = a(x- h)^ + k, I
if a > 0, the minimum point is {h, k)
" if a < 0, the maximum point is {h, k).
Chapter 2: Simultaneous equations and quadratics
WORKED EXAMPLE 4
f(x)= 2 + 8x — 2x^
x: e R
a Find the value of a, the value of 6 and the value of cfor which [(x)= a - l>(x + cf. b Write down the coordinates of the maximum point on the curve y = f(*). c Sketch the graph of 31 = f(x), showing the coordinates of the points where the graph intersects the xand 31-axes. d State the range of the function f(x). Answers
a 2 + 8x - 2x^ = a - b{x + c)^
2 + 8x - 2x^ = a - 6(x^ + 2cx + ) 2+ 8x - 2x^ = a — bx^ - 2bcx - bc^
Comparing coefficients of x^, coefficients of x and the constant gives: -2 = -b
(1)
8 = -2bc
(2)
2 = a-bc^
(3)
Substituting 6 = 2 in equation (2) gives c = —2. Substituting b = 2 and c = -2 in equation (3) gives a = 10. So a = 10,6 = 2 and c = -2.
v = 10-2(x-2)
This part of the expression is a square so it will always be ^ 0. The smallest value it can be is 0. This occurs ^^•hen X = 2.
The maximum value of the expression isl0-2x0=10 and this maximum occurs when X = 2.
So the function y = 2+ 8x - 2x^ will have maximum point at the point (2, 10). c y
2+ 8x - 2x^
When X = 0, y = 2. When y = 0,
y=2 + 8x- 2x'
10- 2(x - 2)^ = 0
2(x-2)^ =10 (x - 2)^ = 5 X - 2 = +V5 X = 2 ± yfb
X = 2 — y/5 or X = 2+ Vs (x = -0.236 or X = 4.24 to 3 sf).
Axes crossing points are: (0, 2),(2- y/E, O) and (2+ y/E, o). d The range is f(x) 10.
2 + yj5
Cambridge IGCSE and 0 Level Additional Mathematics
Exercise 2.2
1 Use the symmetry of each quadratic function to find the maximum or minimum points. Sketch each graph,showing all axis crossing points,
a y=
- bx - &
d y = x^ + 3x - 28
b y=
- x-20
c y = x^+4x-21
e y=
+ 4x + 1
f y = 15 + 2x -
2 Express each of the following in the form {x — m)^ + n. a x^ — 8x
b
x^ — lOx
c x^ — 5x
d
x^ — 3x
e x^ + 4x
f
x^ + 7x
g x^ + 9x
h x^ + 3x
3 Express each of the following in the form (x - m)^ + n. a x^ — 8x + 15
b
x^ — lOx — 5
c x^ - fix + 2
d
x^ — 3x + 4
e x^ + fix + 5
f
x^ + fix + 9
g x^ + 4x - 17
h x^ + 5x + fi
4 Express each of the following in the form a(x - p)^ + q. a 2x2 _
+3 b
e 2x2 + 4j(; + 1 f
2x2 - 12x + 1
^ 3x2 _ i2x + 5
2x2 ^
g 2x2 _ 3^ ^ 5
_3
d
2x2 - 3x + 2
3j(.2 _ ^ 0
5 Express each of the following in the form m-{x- nf. a fix — x2
b
lOx — x2
c 3x — x2
d
8x — x2
d
7 + 3x - x2
6 Express each of the following in the form a-{x + b)\2. a 5 - 2x - x2
b 8- 4x - x2
c 10 - 5x - x2
7 Express each of the following in the form a - pi^x + a 9- fix - 2x2
y _ 4j(; _ 2x2
^ 7
gx - 2x2
. 2 + 5x - 3x2
8 a Express 4x2 + 2x + 5 in the form a{x + b) + c, where a, b and c are constants.
b Does the function y = 4x2 ^ 2x + 5 meet the x-axis? Explain your answer.
9 f(x)= 2x2 - 8x + 1
a Express 2x2 _
4. y
form a(x + b^ + c, where a and b
are integers.
b Find the coordinates of the stationary point on the graph of y = f(x). 10 f(x)= x2 - X - 5 for x6 R a Find the smallest value off(x) and the corresponding value of x. b Hence write down a suitable domain for f(x) in order that f~H^) exists.
11 f(x)= 5 - 7x - 2x2 y-Qj. g (R
a Write f(x) in the form p-2{x- q^, where p and q are constants to be found.
b Write down the range of the function f(x).
Chapter 2: Simultaneous equations and quadratics
12 f(x:) = 14 + 6jc -
for xG IR
a Express 14 + 6x - 2x^ in the form a + b{x + c)^, where a, b and c are constants.
b Write down the coordinates of the stationary point on the graph ofy = f(x).
c Sketch the graph of y = f(x). 13 f(x) = 7 + 5x -
for 0 ^ X ^ 7
a Express 7 + 5x - x^ in the form a -(x +
, where a, and b
are constants.
b Find the coordinates of the turning point of the function f(x), stating whether it is a maximum or minimum point. c Find the range off.
d State, giving a reason, whether or not f has an inverse. 14 The function f is such that f(x) = 2x^ -8x + 3.
a Write f(x) in the form 2(x + of + b, where a, and ^are constants to be found.
b Write down a suitable domain for f so that f
exists.
15 f(x)= 4x^ + 6x -8 where x ^ m Find the smallest value of m for which f has an inverse.
16 f(x)= 1 + 4x - x^ for X ^ 2
a Express 1 + 4x - x^ in the form a-{x-\-bf, where a and b are constants to be found.
b Find the coordinates of the turning point of the function f(x), stating whether it is a maximum or minimum point. c Explain why f(x) has an inverse and find an expression for f~'(x) in terms of x.
Cambridge IGCSE and 0 Level Additional Mathematics
2.3 Graphs of y =|fM|where f(x) is quadratic To sketch the graph of the modulus function y =|ax^ + bx + c\, you must: • first sketch the graph of y = ax"^ + bx + c • reflect in the x-axis the part of the curve y - ax^ + bx + c that is below the x-axis. WORKED EXAMPLE 5
Sketch the graph ofy =|x^-2x-3| Answers
First sketch the graph of y = x" - 2x -3. When X = 0, y = -3.
OG 1
So the y-intercept is -3. When y = 0,
CM
tT(
x^ - 2x - 3 = 0
I
II
(x + l)(x-3)= 0 X = -1 or X = 3.
So the x-intercepts are -1 and 3.
The x-coordinate of the minimum point = -1^+ 3 =1. The y-coordinate of the minimum point =(l)^-2(l)-3 = -4. The minimum point is (1,-4).
\
^
-i\o -3
(1.-4)
Now reflect in the x-axis the part of the curve y = x^ - 2x - 3 that is below the x-axis. (1,4)
\
y= \x^--2x- 3| /
\ ^ -1\ O
_/ 3
Chapter 2: Simultaneous equations and quadratics
A sketch of the function )> =|«:^ + 4x - 12| is shown below. 7
\
(-2,16)
\ /
/
Y
-6
O
Now consider using this graph to find the number of solutions of the equation I
+ 4x - I2I = A where
0.
y = \x^ + 4:x- 12\ J = 20 IX^ + 4x- 121 = 20 has 2 solutions (-2,16)
> 0.
Answers
1
Sketch the graph of 31 = x^ - 3x — 4. When 3 = 0, x^ — 3x - 4 = 0
\
^
/^ I /+
+\
II
(x + l)(x - 4)= 0 X = -1
or
X = 4.
-i\o
X
So the x-axis crossing points are -1 and 4.
For x^ — 3x - 4 > 0 you need to find the range of values of x for which the curve is positive (above the x-axis). The solution is x < -1 and x > 4.
Solve 2x2
15 _
Answers
y
y= 2x^ + X- 15
Rearranging: 2x2 ^j(._i5^q
Sketch the graph of 3 = 2x2 ^ _ 15
\
/+
When 3 = 0, 2x2 -1- X - 15 = 0 (2x-5)(x + 3)= 0
-3\
X = 2.5 or X = -3. So the x-axis crossing points are -3 and 2.5.
0
/2.5
\
For 2x2 ^ _ 15 ^ Q yQy need to find the range of values of x for which the curve is either zero or negative (below the x-axis). The solution is -3 ^ x ^ 2.5.
Exercise 2.4 1
Solve.
a (x + 3)(x-4)>0 b d x(x — 5) < 0
(x-5)(x-l)^0 c (x-3)(x + 7)^0
e (2x + l)(x-4) < 0 f (3-x)(x + l)^0
g (2x + 3)(x-5) < 0 h {x-bf^Q
i (x - 3)^
0
Solve.
a
x'"^ + 5x - 14 < 0
d x2 + 2x - 48 > 0
b x^ + X - 6 ^ 0
c
x2 - 9x + 20 ^ 0
e 2x2 - X - 15 ^ 0
f
5x2 ^
4. 4 > Q
X
Chapter 2: Simultaneous equations and quadratics
3
Solve. a
12x < x2 + 35
< 18 - 3x
c x(3- 2x)^ 1
e (x + 3)(1 - x) < X -1 4
5
x^ + 4x < 3(x + 2) (4x + 3)(3x — 1) < 2x(x + 3)
Find the set of values of x for which
a x^ - llx + 24 < 0
and
2x + 3 < 13
b x^ - 4x ^ 12
and
4x - 3 > 1
c x(2x - 1) < 1
and
7- 2x < 6
d x2 - 3x - 10 < 0
and
x^ - lOx + 21 < 0
e x^+x-2>0
and
x^ - 2x - 3 ^ 0.
Solve.
a 1 x^ + 2x - 2| < 13 b 1 x^ - 8x + 61 < 6 C CHALLENGE Q
6 Find the range of values of x for which
< 0.
3x^ - 2x -8
2.5 Roots of quadratic equations The answers to an equation are called the roots of the equation. Consider solving the following three quadratic equations using the -b ± yjb'^ — 4ac formula x = 2a
x^ + 2x -8 = 0
_ -2 ±
x^ + 6x + 9 = 0
-4 X 1 X(-8)
-6 ± X -
-2±-v/36 X = 2 or X = -4 2 distinct roots
2x1
-2±>/0 X =
2
-2 ± V22 - 4 X1 X 6 X =
2x1
2x1 X =
x^ + 2x + 6 = 0
-4 X 1 X 9
-2 ± V-20 X =
2
2
X = -1 or X = -1
no solution
2 equal roots
The part of the quadratic formula underneath the square root sign is called the discriminant.
discriminant = b^ — 4ac
0 roots
Cambridge IGCSE and 0 Level Additional Mathematics
The sign (positive, zero or negative) of the discriminant tells you how many roots there are for a particular quadratic equation. 6^ -4ac
Nature of roots
>0
2 real distinct roots
=0
2 real equal roots
0, the minimum point is {h, k)
ii if a < 0, the maximum point is {h, k).
Chapter 2: Simultaneous equations and quadratics
Quadratic equation {ax^+ bx+c=0)and corresponding curve(y =ax^+ bx+c) Nature of roots of
Shape of curve y - ax^ + + c
ax^ + bx + c- 0
■X
>0
or
2 real distinct roots
The curve cuts the x-axis at 2 distinct points.
or
= 0
2 real equal roots The curse touches the x-axis at 1 point.
or
0
2 real distinct roots
2 distinct points of intersection
= 0
2 real equal roots
1 point of intersection (line is a tangent)
y -1=0.
b Use your answer to part a to solve the equation 4(2*)^ + 3(2*) -1=0. Answers
a
43^ + 3y - 1 = 0
factorise
(43-1) (3+1) =0 43-1 = 0 or 3+1 = 0
1 or 3 = —11 3 =—
b 4(2*)^ + 3(2*)-1 =0
2'' = i-or2* =-l 4
2
comparing with 4y + 3y — 1 = 0 gives y = 2*
replace — with 2"^ '
4
2* = 2"^ or 2* =-l X 2 Solving 2=2 , gives x = - 2.
There is no solution to 2* =: -1, since 2* > 0 for all real values of x. The solution is x = -2.
Cambridge IGCSE and 0 Level Additional Mathematics
Exercise 3.2
1 Solve each of the following equations, a 52>: = 57x-i
b 4^*+1=43^-2 ,9x+5
d
=3
2 Solve each of the following equations.
a 2"^^ =32 2n+ 1
d 3
g 5
= 27
n+ 1 _
c 2"'"^ = 128
b 4^"-256 in- 1 _
3n+ 2
e 2'
f 2
~4 h 5^'-16 = 1
1
128
125
3 Solve each of the following equations.
4.3
3^*-1 = 27*
a 2* = 4-
.3x+4
d 3* = 9*^^
e 4
c 53^-7 = 252^
o4x+12
= 8^
5-3x
1
h 4
f 252^^+1 = 1253^^+2 i
,x+ 1
j 5x^ + 3 = 252^
I 2'^*"~^-8* =0
k 3*'"^ = 27' 1
H
4 Solve each of the following equations. 00
a 2^*x4*^'=64
b 2^*""^ x 8*'^ = 128
c (2^"*)(4^*"^^)= 8
d 3*^'x9^-*= — 27
5 Solve each of the following equations. ^Sx 272x ,2x+ 1 4* b 2?- X gO-X gx+3 ix+ 4
8~
64
272x d
4I*
32*+1
36-x- 9X+3
6 Solve each of the following equations.
a 3^*x2* = —
b 2^* X 5* = 8000
c 52^x4* =
18
1 1000
7 Solve each of the following pairs of simultaneous equations.
a 4* 4-21" = 16
b 27* = 9(3^)
32*x9> = 27
c 125* 4-51'= 25
2*4-81'= 1
8 a Solve the equation
- 7y- 4 = 0.
b Use your answer to part a to solve the equation 2(2*)2 - 7(2*)-4= 0. 2
9 a Solve the equation 4y = 15 + 7y.
b Use your answer to part a to solve the equation 4(9*) = 15 + 7(3*). 3
10 a Solve the equation 3y = 8 + y.
^
^
b Use your answer to part a to solve the equation 3x2 = 8 + 3x 2.
Chapters: Indices and Surds
33 Surds A surd is an irrational number of the form that is not a perfect square.
, ^/5 and
where n is a positive integer
are all surds.
^/9 is not a surd because V9 = V?= 3. I— I— I— ~ Other examples of surds are 2+ \5, V7 - V2 and 3 —5~~-
When an answer is given using a surd, it is an exact answer.
CLASS DISCUSSION
The frog can only hop onto lily pads that contain surds. It is allowed to move
along a row (west or
v.., I
east) or a column (north or south) but is not allowed to move
diagonally. Find the route that the
frog must take to catch the fly.
.
You can collect like terms together. 6^/^^ + 3Vir = 9-Jn and 5>/7 - 2^7 = 3>/7 WORKED EXAMPLE 6
Simplify 4(5 - ^/3) - 2(5^3 - l)Answers
4(5 - V3) - 2(5V3 - 1)
expand the brackets
= 20-4a/3-10\/3+2 = 22 -14V3
collect like terms
♦
ll'+V25^! .■ » \
„ .^1
Cambridge IGCSE and 0 Level Additional Mathematics
Exercise 3.3
1 Simplify. a 3>/5 + 7V5
b 3VT0 + 2VT0
c 8^^TT+^/TT
A 3>/5 + 7V3
B 2>/5-3Nf3
C 2>/3 - >/5
b
c 2A+3B
d 6^3-V3
2
Simplify. 3 A+B
A-C
d
5A + 2B - C
3 The first 4 terms of a sequence are
2 + 3V7
2 + 5^/7
2 + 7V7
2 + 9^/7.
a Write down the 6th term of this sequence,
b Find the sum of the first 5 terms of this sequence. C Write down an expression for the nth term of this sequence.
4 a Find the exact length of AB.
^
b Find the exact perimeter of the triangle.
CHALLENGEQ
5 The number in the rectangle on the side of the triangle is the sum of the numbers at the
adjacent vertices.
17-10 a/2 Find the value of x, the value of
yand the value ofz.
CHALLENGE Q
6 This design is made from 1 blue circle, 4 orange circles and 16 green circles. The circles touch each other. Given that the radius of each
green circle is 1 unit, find the exact radius of
a the orange circles, b the blue circle.
3.4 Multiplication,division and simplificatlonof surds You can multiply surds using the rule; \[ax "lb = 4ab
WORKED EXAMPLE 7
Simplify. a
VSxVb
b (V8)'
c 2V5X3V3
Answers
a
V3 X >/5 = V3^= VT5
b (Vs)^ = VS X VS = VM = 8
Note:
c 2a/5 X 3V3 = 6Vl5
Expand and simplify.
a (4-V3)^
b (V3 + 5>/2)(V2+V3)
Answers
a (4-V3)'
scpiars rrxeans multiply by itself
=(4-V3)(4-V3)
I xp ind the brackets
= 16-4V3-4V3+ 3
I
lifeetmtis
= 19-8V3
b (V3 + 5V2)(V2 + V3) = V6 + 3+ 10 + 5V6
expand the braGkets eelleet Eke terms
= 13 + 6a/6
V98 can be simplified using the multiplication rule. -M = V49x2 = V49 X V2 = 7V2
1
Cambridge IGCSE and 0 Level Additional Mathematics
at
WORKED EXAMPLE 9 1 II
00|
Simplify
X X
- Vl2
Answers
1
V75->/l2
75= 25 X 3and 12 =4 x 3
X
= 5 and a/4 = 2 = 5x^/3-2x a/3
collect like terms
= 3a/3
You can divide surds using the rule:
•\/a
a
b
WORKED EXAMPLE 10
Simplify Nfn" Answers
4(5 - ^/3)- 2(5V3 - 1) =20-4>/3-10a/3+2
Exercise 3.4
Simplify. b
e (VII)"
a/2 X a/^
f
c
a/5 X a/6
d
g
3a/2 x5a/3
h
7a/5 x2V7
Simplify. a/112
" V28 A[i2
® a/108 .
V5 a/^
U
a/^
D
c
a/T2
a/T7 U
a/3 f f
J
a/T5 V3 a/^ 2a/TT
g 1#
Vm a/6
9a/^
a/4 n
a/^ 1
a/120
1
3a/5
a/^
Simplify. a a/8
b
e
f
1
a/12
c
g
a/^
j
a/90
k
m a/44
n
a/125
0
a/T8
a/117
d
a/^
h
a/32
I
a/99
P
a/200
Chapters: Indices and Surds
q
|o
r
VSOOO
+
" 5 y V^x^/5
3
2
V ^!w X ^flO
^/8x VS
w
•VS X ^/6
1
joK | oo
Simplify. a
b
a/12 + a/3
c
a/^ + 3a/5
d
V^+ 2V3
e
a/^-2V8
f
a/125 + a/^
g
V45 - a/5
h
a/^-5a/5
i
a/175 - a/^ + a/^
k
a/200 - 2VI8 + a/72
I
5a/^- 3a/63 - a/7
n
5a/T2-3^/48 +
0
a/^ + a/8 - a/98 +
j m
V^+ 2V^ + 4a/45
5 Expand and simplify.
a ^/2(3+^/2)
b >/3(2V3 + a/T2)
c a/2(5-2V2)
d ^/3(^/^ + 5)
e ^/3(^/3-l)
f ^/5(2V5 + ^/^)
g (>/2 + l)(V2-l)
h (V3+5)(^/3 - 1)
i (2 + a/5)(2V5 + 1)
j (3- >/2)(3 + V2)
k (4 + V3)(4 - >f3)
I (1 + a/5)(1 - Vs)
m (4 + 2^/3)(4 - 2V3)
n (V7 + ^/5)(^/7 + 2^/5) o (3 + 2^/2)(5 + 2^/2)
6 Expand and simplify.
(2 + V5)'
b (5-^/3)'
(4 + 5V3)^
d (^/2 + ^/3)^
7 A rectangle has sides of length (2 + ^/8) cm and (7- >/2) cm. Find the area of the rectangle.
Express yourloo answer in the form a + b^I2, where a and b are integers. 8 a Find+the value of AC'^. b Find the value of tan x.
Write your answer in the form
where a and b are integers, c Find the area of the triangle. Write your answer in the form
5V2
where p and q are integers. 9 A cuboid has a square base.
The sides of the square are of length (l + V2)cm. The height of the cuboid is (S - V2)cm. Find the volume of the cuboid.
Express your answer in the form a+ b^}2, where a and b are integers.
Cambridge IGCSE and 0 Level Additional Mathematics
% CHALLENGEQ
10 Find the exact value of y2 +V3 - ^2 - Vs.
(Hint:let x = V2 + VS - V2- VS and then square both sides of the equation.)
CHALLENGE Q
11 a Given that a/6'-4^ = Va - Vfe, find the value of a and the value of b.
b Given that "^23-6^6-4^2 = Vc + Vrf, find the value of /3)(2- V3) = 4-2V3 + 8\f3-12 = -8 + 6V3
4(2 + V3)(2-V^ ■8 + 6^/3
cos 6 = cos 6 ■
(2 + >i3)(2-Nl3) = 2'-(V3)2 = l divide numerator and denominator by 2
4
-4 + 3V3
Exercise 3.7 Exam exercise
1 Solve 2'^'"'' = ^. 64
[4] Cambridge IGCSE Additional Mathematics 0606 Paper 21 Qlla Jun 2014
2
Solve the simultaneous equations, 4*
^
256>
= 1024
32^ X 9^ = 243
[5]
362y-5^ 02^-1 3
Solve the equation
03,
Cambridge IGCSE Additional Mathematics 0606 Paper 21 Q5 Nov 2013
[4]
210^^®'
Cambridge IGCSE Additional Mathematics 0606 Paper 21 Q5b Jun 2012
4 Integers a and b are such that [a + corresponding values of b.
+ a - ftVs = 51. Find the possible values of a and the [0] Cambridge IGCSE Additional Mathematics 0606 Paper 21 Q9 Nov 2014
5 Without using a calculator, express 0(l + "n/s)" ^ in the form a + 6^3, where a and b are integers to be found.
[4] Cambridge IGCSE Additional Mathematics 0606 Paper 21 Q2Jun 2014
6 Do not use a calculator in this question.
(4V5 _ 2)'^ . rExpress — in the form pMb + q, where j&and ^are integers.
[4]
Cambridge ICCSE Additional Mathematics 0606 Paper 21 Q2 Nov 2013
7 Do not use a calculator in any part of this question.
a i Show that 3V5-2^/2 is a square root of 53- 12Vl^.
[1]
ii State the other square root of 53- 12^10. b Express in the form a + Z>>/6, where a and b are integers to be found.
[1] [4]
Cambridge IGCSE Additional Mathematics 0606 Paper 11 Q7a,hi,ii Nov 2012
8 Calculators must not be used in this question. B
V5-2
V5-1
The diagram shows a triangle ABC in which angle A = 90°.
Sides AB and AC are V5 - 2 and V5 + 1 respectively. Find tan B in the form a + &V5, where a and b are integers.
[3]
Cambridge IGCSE Additional Mathematics 0606 Paper 11 Q7iJun 2013
9 Given that
^
= p"q C, find the values of a, b, and c.
[3]
p^q^r Cambridge IGCSE Additional Mathematics 0606 Paper 12 Q2 Mar 2016
10 Do not use a calculator in this question.
1 + 3V3 XI
6 + 2V3
5-V3
The diagram shows two parallelograms that are similar. The base and height, in centimetres, of each parallelogram is shown. Given that x, the height of the smaller parallelogram, ic P + IS
^ find the value of each of the integers p and q.
[5]
Cambridge IGCSE Additional Mathematics 0606 Paper 22 Q6 Mar 2016
Chapter 4
Factors and polynomials This section will show you how to: ■
use the remainder and factor theorems
■ find factors of polynomials M solve cubic equations.
Chapter 4: Factors and polynomials
4.1 Adding,subtracting and multiplying polynomials A polynomial is a an expression of the form + ...
+ Cq
where:
•
X is a variable
• n is a non-negative integer •
the coefficients
•
are constants
is called the leading coefficient and
0
• Uq is called the constant term.
The highest power of x in the polynomial is called the degree of the polynomial.
You already know the special names for polynomials of degree 1, 2 and 3. These are shown in the table below together with the special name for a polynomial of degree 4. Polynomial expression ax + b,
Degree
Name
1
linear
2
quadratic
3
cubic
4
quartic
a ^0
ax^ + bx + c,
a ^0
ax^ -1- bx'^ + CX + d, ax^ + bx^ + cx^ ■¥ dx + e,
a ^0 a ^ d
The next example is a recap on how to add, subtract and multiply polynomials. WORKED EXAMPLE 1
If P(x) =
a
- 5 and Q(x) = x® + 2x - 1, find an expression for
P(x) + Q(x),
b
P(x)-Q(x),
c
2Q(x),
d
Answers
a P (x) + Q (x) = 2x® - 6x^ - 5 + x^ + 2x -1
collect like terms
= 3x® — 6x^ + 2x — 6
b P (x) - Q (x) = (2x' - 6x2 _ 5) _
+ 2x - l) remove brackets
= 2x® - 6x2 _ 5 _ ^3 _ 2x + 1
collect like terms
= X® - 6x2 - 2x - 4
c 2Q(x) = 2(x3 + 2x-1) = 2x^ + 4x - 2
d P(x)Q(x) = (2x® — 6x2 _ s){x^ + 2x — l) = 2x'^ (x® + 2x — l) — 6x2 ^ 2x — l) - 5 (x^ + 2x - l) = 2x® + 4x^ - 2x' — 6x^ — 12x® + 6x2 _ 5^3 _ = 2x® - 6x® + 4x^ - 19x® + 6x2 _ jq^ ^ 5
^g
P(x)Q(x).
Cambridge IGCSE and 0 Level Additional Mathematics
CLASS DISCUSSION
P(x) is a polynomial of degree p and Q(x) is a polynomial of degree q, where p> q. Discuss with your classmates what the degree of each of the following polynomials is; P(^) + Q(x)
2P(x)
Q(x) + 5
-3Q(x)
P2{x)
[Q(^)]'
P(x)Q(x)
QPW
Q(x) - P(x)
Exercise 4.1
1 If P(x)= 3x'^ +
- 1 and Q(x)= 2x^ +
+ 1, find an expression for
a P(x)+ Q(x) b 3P(x)+ Q(x)
c P(x)-2Q(x) d P(x)Q(x).
2 Find the following products,
a (2x-l)(4x^+X + 2)
c (3x^ + 2x - 5)(x^ + e (x^ - 5x + 2)^
+ 4)
b (x3 + 2x'^ - l)(3x + 2) d (x + 2)'^(3x3 ^ ^ f {Sx-lf
3 Simplify each of the following, a (2x - 3)(x + 2)+(x + l)(x -1)
b (3x + l)(x^ + 5x + 2)-(x^ - 4x + 2)(x + 3) c (2x3 + ^ + 3^ _ 4) _ + 2)(x3 - x2 + 5x + 2)
4 If f(x) = 2x^ - X - 4 and g(x) = x^ + 5x + 2,find an expression for a f(x)+ »g(x)
b [f(x)]^ c f^(x) d gf(x).
Chapter 4: Factors and polynomials
4.2 Division of polynomials To be able to divide a polynomial by another polynomial you first need to remember how to do long division with numbers. The steps for calculating 5508
17 are:
324
1 7)5508 51 i
Divide 55 by 17 3 X 17 - 51
40 3_4 68 68
55 - 51 = 4, bring down the 0 from the next column Divide 40 by 17, 2 x 17 = 34 40- 34 = 6, bring down the 8 from the next column Divide 68 by 17, 4 x 17 = 68
0
68 - 68 = 0
5508 -17 = 324
So
dividend
divisor
quotient
The same process can be applied to the division of polynomials.
WORKED EXAMPLE 2 1 Divide x'- 5x^ + 8x -4 by
x-2.
Answers
Step 1: X?
X - 2) - 5x^ + 8x - 4
x^- 2x^ i
divide the first term of the polynomial hjx,x^^x -
multiply (x - 2) byx2, x^{x -2)= x® -2x2 subtract, (x® — 5x2) _ ^^3 _ ^x'^) =-3x2
—Sx? + 8x
bring down the 8x from the next column Step 2:Repeat the process x^ - 3x
X - 2) -5x^ + 8x - 4 x^-2x^ -3x^ + 8x
—3x^ + 6x
divide -3x2 ,,
2x-4
^ —3^2^ x = —3x
multiply(x — 2) by—3x, —3x(x — 2)= —3x2 ^ subtract,(-3x2 +
_ (—3x2 +
_ 2x
bring down the -4 from the next column
Step 3:Repeat the process x^ - 3x + 2
X - 2)x^ -5x^ + 8x - 4 x3-2x2 -3x2 + 8^ —3x2 2x-4 2x-4 0
divide 2x by x; 2x -r x = 2 multiply (.X — 2) by 2, 2(x — 2) = 2x — 4 subtract,(2x — 4) — (2x — 4) =0
So (x® - 5x2 gjc - 4)-5-(x - 2)= x2 - 3x + 2.
J
Cambridge IGCSE and 0 Level Additional Mathematics
r
WORKED EXAMPLE 3
Divide 2x'' - x + 51 by x + 3. There are no x2 terms in 2x^ -x + 51 so we write it as 2x3
q^2 _
+ 5J
Answers
Step 1: 2x2
x +3)2x3+0x2-
52
2r + 6x2 1 -6x2 _ ^
divide the first term of the polynomial by x, 2x3 ^ = 2x2 multiply (x + 3) by 2x2, 2x2(x + 3)= 2x3 g^2 subtract, (2x3 ^ ^ 5^2^ =-6x2 bring down the -x from the next column
Step 2; Repeat the process 2x2 _ 0^
x +3)2x3+ 0x2-
x+51
2x3+ 6x2 -6x2 _ ^ —6x2 - 18x ' I7x+51
divide -6x2
—6x2 ^ = —6x
multiply (x + 3) by-6x,-6x(x + 3)=-6x2 _ subtract, (-6x2- x)-(-6x2 _ jg^^ = 17x bring down the 51 from the next column
Step 3: Repeat the process x2 - 6x+ 17
X + 3)2x3+0^2 _
52
2x3^ —6x2 _ Jgjj. 17x+51 17x+51 1
H
0
divide I7x by .x, I7x ^ x = 17 multiply (x + 3) by 17, 17(x + 3) = 17x + 51 subtract,(17x + 51)-(I7x + 51) =0
DL
So (2x3 _ j(. + 5j^ ^ 1
3) _ 2x^ - 6x +17.
Exercise 4.2
Simplify each of the following,
a (x'"® + 3x^ - 46x - 48)^(x + 1) c (x^ - 20x2 + loOx - 125)-(x - 5) e (x'^ — 3x2 _ 32^ 33^ _ *7^
b d f
(x^ — x2 - 3x + 2)-5-(x — 2) (x3 - 3x - 2)-J- (x - 2) (x3 + 2x2 _ 9^ _ ig)^ (;c + 2)
Simplify each of the following.
a (3x^ + 8x2 ^ 3^ _ 2) (x + 2) c (3x3 - 11x2 + 20)-(x - 2)
b d
(6x3 +11x2 -3x-2)-5-(3x + 1) (3x3 _ 21^2 + 4^ _ 28)-(x - 7)
Chapter 4: Factors and polynomials
3 Simplify.
^
- Sx^ — 4x + 4
2x3 + 9^2 + 25
b
a
X -1
X +5
^ x3 - 14x - 15
5x^ — 50% + 8
'3x2 +i2x-2
x2 — 3x — 5
4 a Divide x^ — 1 by (x + 1).
b Divide x^ -8 by (x - 2).
4.3 The factor theorem In Worked example 2 you found that x - 2 divided exactly into
(x3 - 5x2 _ 4j _ (x3 - 5x2 + g^ _ 4^ ^
_ 2)= x2 - 3x + 2
This can also be written as:
(x3 - 5x2 ^ gj^ _ 4^ _
_ 2)(x2 - 3x + 2)
If a polynomial P(x) is divided exactly by a linear factor x - c to give the
polynomial Q(x), then P(x)=(x - c)Q(x).
Substituting x = c into this formula gives P(c)= 0. Hence:
Iffor a polynomial P(x), P(c) =0 then x - c is a factor of P(x). This is known as the factor theorem.
For example, when x = 2,
4x3 - 8x2 - X + 2 = 4(2)3 _ g(2)2 - 2+ 2- 32-32- 2+ 2 = 0. Therefore x - 2 is a factor of 4x3 _
^ ^2.
The factor theorem can be extended to:
Iffor a polynomial P(x),
= 0 then ax-b is a factor of P(x).
For example, when x = —,
4x3-2x2+ 8x-4 = 4|^ij Therefore 2x - I is a factor of 4x3 - 2x2 + gjj, _ 4
Cambridge IGCSE and 0 Level Additional Mathematics
CLASS DISCUSSION
Discuss with your classmates which of the following expressions are exactly divisible by *- 2. - X -2
2x^ -
2x^ + 5x^ - 4x - 3
X® - 4x^ + 8x -8
x^ -8
3x^ - 8x -8
+ Sx^ -2x -5
dx^ - lOx^ - 18
x^ + X + 10
- 4x - 4
WORKED EXAMPLE 4
Show that X - 3 is a factor of
— 6x^ + llx — 6 by
a algebraic division b
the factor theorem.
Answers
a
Divide
- 6x^ + llx -■6 —
by X - 3.
3x + 2
X - 3) x^ - 6x^ + llx -
6
X? — 3x^ -3x2 + 11^ -3x2 ^ 2x- 6 2x- 6 0
The remainder = 0, so x - 3 is a factor of x^ - 6x2 +
b Let f(x) = x^ — 6x2 +
_5
-6 .
i f f(3) = 0,then x — 3 is a factor.
f(3) = (3)®-6(3^ + 11(3)-6 = 27-54 + 33-6 = 0
So X - 3 is a factor of x^-6x2 +llx-6.
Chapter 4: Factors and polynomials
WORKED EXAMPLE 5
2x^ + x — \ is a factor of 2x^ - x^ + ax + b. Find the value of a and the value of b.
Answers
Let f(x:) =
— x^ + ax + b.
If 2x^ + jc - 1 =(2*- l)(x: + 1) is a factor off(x), then 2x - 1 and AS + 1 are also factors off(*).
Using the factor theorem f
= 0 and f(-l)= 0.
f(|)= 0 gives 2(i)
=0 1
1 +-+i=0 « . ev
4
4
2
a = -2b
"(1)
f(-l)= 0 gives 2(-if -(-if + a(-l)+ b = 0 -2-l-a + b = 0 a = b-3
-(2)
(2)= (1) gives b-3 = -2b 5b = 3 b=l
Substituting in (9) gives a =-2. So a =-2,6 = 1.
Exercise 4.3 1
Use the factor theorem to show: a AC -4 is a factor of
b AC + 1 is a factor of
- 6x + 8
-Sx -2
c x-2 is a factor of 5ac^ - 17ac^ + 28
d 3ac + 1 is a factor of
+1
- 3x - 2.
2 Find the value of a in each of the following, a X + 1 is a factor of 6x^ + 27x^ + ax + 8.
b X + 7 is a factor of x^ - 5x^ - 6x + a. c 2x + 3 is a factor of 4x^ + ax^ + 29x + 30. 3 X - 2 is a factor of x^ + ax^ + bx - 4.
Express b in terms of a.
4 Find the value of a and the value of b in each of the following, a x^ + 3x - 10 is a factor of x^ + ax^ + 6x + 30. b 2x^ - 1 Ix + 5 is a factor of ax^ - 17x^ + bx- 15.
c 4x^ - 4x - 15 is a factor of 4x^ + ax^ + 6x + 30.
Cambridge IGCSE and 0 Level Additional Mathematics
5 It is given that
-5x +6 and x^ - 6*^ + llx + a have a common factor.
Find the possible value of a.
6 X - 2 is a common factor of 3x^ -{a - b)x -8 and
-(a + b)x + 30.
Find the value of a and the value of b.
7 3c -3 and 2jc - 1 are factors of 2*^ - px^ - 2qx + q. a Find the value of p and the value of q.
b Explain why x + 3 is also a factor of the expression. 8 X + a is a factor of x^ + 8x^ + Aax - 3a. a Show that
- 4a^ + 3a = 0.
b Find the possible values of a.
4.4 Cubic expressions and equations Consider factorising x^ - 5x^ + 8x - 4 completely.
In Worked example 2 you found that (x^ - 5x^ + 8x - 4)-s-(x - 2)= x^ - 3x + 2. This can be rev/ritten as: x^ — 5x^ + 8x - 4 =(x - 2)(x^ — 3x + 2). Factorising completely gives: x^ - 5x^ + 8x - 4 =(x - 2)(x - 2)(x - 1). Hence if you know one factor of a cubic expression it is possible to then factorise the expression completely. The next example illustrates three different methods for doing this. WORKED EXAMPLE6
Factorise
— 3x^ — 13x +15 completely.
Answers
Let f(x)= — 3x^ — 13x +15. The positive and negative factors of 15 are ±1, +3, ±5 and ±15.
f(l) =(if -3 X(if -13 X (1)+15 = 0 So X - 1 is a factor off(x).
The other factors can be found by any of the following methods. Method 1 (by trial and error) f(x)= x^ - 3x^ - 13x +15
f(1)= (1)® - 3 X (1)'- 13 X (1)+ 15 = 0 So X - 1 is a factor off(x).
f(-3)= (-3)^ -3 X (-3)^ -13 X (-3)+15 = 0 So X + 3 is a factor off(x).
f(5)= (5)^ -3 X (5)^ -13 X(5)+15 = 0 So X -5 is a factor off(x).
Hence f(x)=(x - l)(x - 5)(x + 3)
Chapter 4: Factors and polynomials
Method 2 (by long division) )?— 2x-15
X -l)x^-3x2- 13^+15 —2}P — ISx -2}P + 2x —15x+ 15 —15x+ 15 0
f(x) = (x - l)(x^ -2x- 15) = (x - 1)(x — 5){x + 3) Method 3 (by equating coefficients) Since x — 1 is a factor, x^ — 3x^ — 13x + 15 can be written as:
x^ — 5x^ - 13x +15 =(x - l)(ax^ + bx + c)
coefficient of
constant term is -15, so c = -15
is 1, so a
since -1 X -15 = 15
since 1x1 = 1
x^ - 5x^ - 13x + 15 =(x - l)(x^ + bx-15)
expand and collect like terms
x^ - 3x^ - 13x +15 = x^ +(6 - l)x^ +{-b - 15)x + 15
Equating coefficients of x^: 6- 1 = -3 b = -2
f(x)=(x - l)(x^ - 2x -15) = (x - l)(x - 5)(x + 3)
WORKED EXAMPLE 7
Solve 2x'- 3x2 - I8x - 8 = 0. Answers
Let f(x) = 2x® - 3x2 _
_g
The positive and negative factors of8 are ±1,±2,±4 and ±8. f(-2)= 2(-2)® - 3 X (-2)^ -18 X(-2)-8 = 0 So X + 2 is a factor off(x).
2x^ - 3x2 _ jgjj _ g _
coefficient of
+ 2)(ax2 + 6x + c)
is 2, so « = 2
constant term is -8, so c = -4
since 1x2= 2
since 2 X -4 = -8
2x^ - 3x2 _ jgj|. _ g _ (jj + 2)(2x2 + 2x3 _ 3^2 _ igjj _ g = 2x3 +
_ 4^
+ 4)jj2 +(2fc _ 4)x _ 8
expand and collect like terms
Cambridge IGCSE and 0 Level Additional Mathematics
Equating coefficients of
6 + 4 = -3 b = -7
f(x)=(x + 2)(2x2 _ 7;,; _ 4) =(x + 2)(2x + l)(x - 4)
Hence (x + 2)(2x + l)(x - 4)= 0. 1
So X = -2 or X = -^ or X = 4. 2'
WORKED EXAMPLE 8
Solve 2x^ + 7x2 - 2x - 1 = 0.
Answers
Let f(x)= 2x^ + 7x2 _ 2x - 1. The positive and negative factors of-1 are +1.
f(-l)= 2(-l)® + 7 X (-1)2 -2 X (-1)-1 0 f(1)= 2(1)^ + 7 X (1)2 - 2 X (1)- 1 0 So X - 1 and x+1 are not factors off(x). By inspection, ^
1 = 0.
So 2x - 1 is a factor of:
2x® + 7x2 - 2x - 1 =(2x - l)(ax2 + 6x + c)
coefficient of
is 2, so « = 1
constant term is -1, so c = 1
since 2x1=2
since -1 X 1 = -1
2x'+ 7x2 _ 2x -1 =(2x - l)(x2 + 6x + l) 2x® + 7x2 - 2x -1 = 2x'+ {2b - l)x2 +(2-6)x - 1 Equating coefficients of x^: 2b-1 = 7 b=4
So 2x^ + 7x2 _ 2x - 1 =(2x - l)(x2 + 4x +1). 1
-4 ± V42 -4 X 1 X1
X = — or X
2
1
2x1
-4 ± 273
X = — or X =
2
2
x = ^orx = -2+ >/3 orx = -2->/3
Chapter 4: Factors and polynomials
Not all cubic expressions can be factorised into 3 linear factors. Consider the cubic expression x® + - 36. Let f(x)= x^ + x^ - 36.
f(3)= (3)' +(3)' - 36 = 0 So X - 3 is a factor of f(x).
x^ + x^ - 36 =(x - 3)(ax^ + bx ■¥ c) coefficient of
is 1, so ct = 1
since 1x1 = 1
constant term is —36, so - 12 since -3 X 12 = -36
x^ + x^ - 36 = (x — 3)(x^ + bx + 12) x^ + x^-36 = x^+{b- 3)x2 + (12 - 3b)x - 36
Equating coefficients of x^: ft - 3 = 1 ft = 4
So x^ + x^ — 36 = (x — 3)(x^ + 4x + 12) (Note: x^ + 4x + 12 cannot be factorised into two further linear factors, since the discriminant < 0.) Exercise 4.4
1
a Show that x-1 is a factor of 2x®-x^-2x + l.
b Hence factorise 2x® - x^ - 2x + 1 completely. 2 Factorise these cubic expressions completely.
3
a
x^ + 2x^ - 3x - 10
b x^ + 4x2 _
c
2x-'' - 9x^ - 18x
d
x^ — 8x2
e
2x^-13x2+I7x + 12
f
3x® + 2x2 _ Y^x + 6
e
4x® - 8x2 _ ^
h
2x^ + 3x2 _ 32^ + 15
2
j4
Solve the following equations. a
X® — 3x2 _ 33^ + 35 = 0
b
x3 - 6x2 + llx - 6 = 0
c
3x3+17x2+18X-8 = 0
d
2x3 + 3;c2 -17x + 12 = 0
e
2x3-3x2-llx + 6 = 0
f
2x3 ^
g 4x3 + 12x2 + 5x - 6 = 0
h
2x3 _ 3^2 _ 29x + 60 = 0
— 5x - 4 = 0
Solve the following equations.
Express roots in the form a ± b-Jc , where necessary. a
+ 5x2
4x
2 = 0
b
x-' x3 + 8x2 ^ y2x - 9
c
+ 2x2
7x •
2 = 0
d
2x3 ^ 3^2
Solve the equation 2x3 ^ g^2 - 14^ - 9 = 0.
Express roots in the form a ± ftVc , where necessary.
0
17x + 12 = 0
Cambridge IGCSE and 0 Level Additional Mathematics
Solve the equation
+ 8x^ + 12x = 9.
Write your answers correct to 2 decimal places where necessary, a Show that X - 2 is a factor of x^ - x^ -x-2.
b Hence show that x^-x^-x-2 = 0 has only one real root and state ■ X
the value of this root.
8 f(x) is a cubic polynomial where the coefficient of
is 1.
Find f(x) when the roots off(x) = 0 are
a -2, 1 and 5
b -5,-2 and 4
c -3,0 and 2.
9 f(x) is a cubic polynomial where the coefficient of x'' is 2. Find f(x) when the roots of f(x) = 0 are
a —0.5, 2 and 4
b 0.5, 1 and 2
c —1.5, 1 and 5.
10 f(x) is a cubic polynomial where the coefficient of x^ is 1.
The roots of f(x) = 0 are - 3,1 + ^2 and 1 - V2.
Express f(x) as a cubic polynomial in x with integer coefficients. 11 f(x) is a cubic polynomial where the coefficient of x'^ is 2.
The roots off(x) =0 are ^,2+ y/S and 2- ^/3. Express f(x) as a cubic polynomial in x with integer coefficients.
12 2x + 3 is a factor of 2x^ +[a^ + l)x^ - 3x^ +(l - a^)x + 3. a Show that 4a^ - 9c (c^O), |ax +Z»|^c (c>0) and |ax +6|=s|cx + d|
■ solve cubic inequalities in the form k{x -a){x- b){x — c)^ d graphically ■ sketch the graphs of cubic polynomials and their moduli, when given in factorised form ■ use substitution to form and solve quadratic equations.
Cambridge IGCSE and 0 Level Additional Mathematics
5.1 Solving equations of the type \ ax+ b\ = \cx+ d\ CLASS DISCUSSION
Using the fact that \p\ =
and| =q^ you can say that:
p^-q^=\pf-\qf Using the difference of two squares then gives:
p'-?'=(|p|-l?l)(l/'l+l?l) Using the statement above, explain how these three important results can be obtained: (The symbol O means 'is equivalent to'.) m
• l/'hkl • \p\